Conexess Group is aiding a large healthcare client in their search for a Staff Machine Learning Engineer in a remote capacity. This is a direct hire opportunity with a competitive compensation package.
Position Overview
Operating with full autonomy, you'll establish MLOps excellence, mentor engineering teams, and drive strategic technical decisions that directly impact patient outcomes. This role requires a seasoned engineer who can balance innovation with production reliability while building systems that handle healthcare's most sensitive and complex data.
Key Responsibilities
Architect and maintain enterprise-grade ML infrastructure, including model versioning, automated testing frameworks, containerization strategies, CI/CD pipelines, and comprehensive monitoring systems for model performance, data quality, and drift detection.
Drive MLOps strategy and standards across the organization. Mentor data scientists and engineers on production best practices, system design, and scalable architecture patterns.
Own end to end journey from model development through production deployment, including real-time and batch inference systems, A/B testing frameworks, and automated retraining pipelines.
Collaborate with clinical leaders, product teams, and data scientists to translate complex healthcare requirements into robust, scalable ML solutions.
Present technical strategies to executive stakeholders.
Build fault-tolerant, compliant systems that meet healthcare security and privacy standards.
Establish SLAs, incident response protocols, and disaster recovery procedures for mission-critical ML services.
Evaluate and integrate cutting-edge MLOps tools and practices.
Design systems that scale growth while reducing operational overhead and improving model iteration velocity.
Required Qualifications
Bachelor's degree in computer science, engineering, or related field required; master's degree preferred
Minimum of ten (10) years in software engineering with five (5) years focused on ML infrastructure, MLOps, or production ML systems and Python development with strong software engineering fundamentals and three (3) years architecting and deploying production ML systems on cloud platforms (Azure preferred)
Proven track record building and scaling ML platforms from the ground up
Healthcare or regulated industry experience strongly preferred
Deep experience with containerization (Docker, Kubernetes), orchestration tools (Airflow, Prefect), and infrastructure-as-code (Terraform, ARM templates)
Advanced knowledge of CI/CD systems, automated testing strategies, and GitOps workflows
Data engineering skills: SQL, Spark/PySpark, Databricks, data pipeline optimization
Expertise in model monitoring, observability, feature stores, and experiment tracking at scale
Production experience with both batch and real-time inference architectures
Understanding of healthcare data standards (FHIR, HL7, claims data) is a plus
Demonstrated ability to influence technical direction and mentor senior engineers
Proven communication skills with ability to distill complex technical concepts for diverse audiences
Track record of driving consensus on architectural decisions across multiple stakeholders
Systems thinking skills with focus on reliability, scalability, and maintainability preferred
Understanding of security, compliance, and privacy requirements in healthcare (HIPAA) preferred
#LI-Remote
#LI-CB2
Numbers & Facts
Location
Nashville, TN (Remote)
Skills
A/B Testingunmatched
ARM (Advanced RISC Machine)unmatched
Architectural Servicesunmatched
Best Practicesunmatched
Building Systemsunmatched
Cloud Computingunmatched
Communication Skillsunmatched
Computer Scienceunmatched
Continuous Deployment/Deliveryunmatched
Continuous Integrationunmatched
Data Managementunmatched
Data Qualityunmatched
Data Scienceunmatched
Disaster Recoveryunmatched
Dockerunmatched
Engineeringunmatched
HIPAA (Health Insurance Portability and Accountability Act)unmatched
HL7 (Health Level 7)unmatched
Healthcareunmatched
Incident Responseunmatched
Machine Learningunmatched
Machine Toolunmatched
Medical Productsunmatched
Mentoringunmatched
Microsoft Windows Azureunmatched
Operational Improvementunmatched
Performance Modelingunmatched
Privacy Controlsunmatched
Production Systemsunmatched
Python Programming/Scripting Languageunmatched
Regulatory Complianceunmatched
SQL (Structured Query Language)unmatched
Service Level Agreement (SLA)unmatched
Software Engineeringunmatched
Standards Strategyunmatched
System Testunmatched
Systems Reliabilityunmatched
Systems Scalabilityunmatched
Technical Presentationunmatched
Technical Strategyunmatched
Test Automationunmatched
Test Harnessunmatched
Test Strategyunmatched
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